19 resultados para Fiber optic hydrophone

em Universidad Politécnica de Madrid


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Through the use of the Distributed Fiber Optic Temperature Measurement (DFOT) method, it is possible to measure the temperature in small intervals (on the order of centimeters) for long distances (on the order of kilometers) with a high temporal frequency and great accuracy. The heat pulse method consists of applying a known amount of heat to the soil and monitoring the temperature evolution, which is primarily dependent on the soil moisture content. The use of both methods, which is called the active heat pulse method with fiber optic temperature sensing (AHFO), allows accurate soil moisture content measurements. In order to experimentally study the wetting patterns, i.e. shape, size, and the water distribution, from a drip irrigation emitter, a soil column of 0.5 m of diameter and 0.6 m high was built. Inside the column, a fiber optic cable with a stainless steel sheath was placed forming three concentric helixes of diameters 0.2 m, 0.4 m and 0.6 m, leading to a 148 measurement point network. Before, during, and after the irrigation event, heat pulses were performed supplying electrical power of 20 W/m to the steel. The soil moisture content was measured with a capacitive sensor in one location at depths of 0.1 m, 0.2 m, 0.3 m and 0.4 m during the irrigation. It was also determined by the gravimetric method in several locations and depths before and right after the irrigation. The emitter bulb dimensions and shape evolution was satisfactorily measured during infiltration. Furthermore, some bulb's characteristics difficult to predict (e.g. preferential flow) were detected. The results point out that the AHFO is a useful tool to estimate the wetting pattern of drip irrigation emitters in soil columns and show a high potential for its use in the field.

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The first feasibility study of using dual-probe heated fiber optics with distributed temperature sensing to measure soil volumetric heat capacity and soil water content is presented. Although results using different combinations of cables demonstrate feasibility, further work is needed to gain accuracy, including a model to account for the finite dimension and the thermal influence of the probes. Implementation of the dual-probe heat-pulse (DPHP) approach for measurement of volumetric heat capacity (C) and water content (θ) with distributed temperature sensing heated fiber optic (FO) systems presents an unprecedented opportunity for environmental monitoring (e.g., simultaneous measurement at thousands of points). We applied uniform heat pulses along a FO cable and monitored the thermal response at adjacent cables. We tested the DPHP method in the laboratory using multiple FO cables at a range of spacings. The amplitude and phase shift in the heat signal with distance was found to be a function of the soil volumetric heat capacity. Estimations of C at a range of moisture contents (θ = 0.09– 0.34 m3 m−3) suggest the feasibility of measurement via responsiveness to the changes in θ, although we observed error with decreasing soil water contents (up to 26% at θ = 0.09 m3 m−3). Optimization will require further models to account for the finite radius and thermal influence of the FO cables. Although the results indicate that the method shows great promise, further study is needed to quantify the effects of soil type, cable spacing, and jacket configurations on accuracy.

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The Actively Heated Fiber Optic (AHFO) method is shown to be capable of measuring soil water content several times per hour at 0.25 m spacing along cables of multiple kilometers in length. AHFO is based on distributed temperature sensing (DTS) observation of the heating and cooling of a buried fiber-optic cable resulting from an electrical impulse of energy delivered from the steel cable jacket. The results presented were collected from 750 m of cable buried in three 240 m colocated transects at 30, 60, and 90 cm depths in an agricultural field under center pivot irrigation. The calibration curve relating soil water content to the thermal response of the soil to a heat pulse of 10 W m−1 for 1 min duration was developed in the lab. This calibration was found applicable to the 30 and 60 cm depth cables, while the 90 cm depth cable illustrated the challenges presented by soil heterogeneity for this technique. This method was used to map with high resolution the variability of soil water content and fluxes induced by the nonuniformity of water application at the surface.

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Fiber optic sensors have some advantages in subjects related with electrical current and magnetic field measurement. In spite of the optical fiber utilization advantages we have to take into account undesirable effects, which are present in real non-ideal optical fibers. In telecommunication and sensor application fields the presence of inherent and induced birefringence is crucial. The presence of birefringence may cause an undesirable change in the polarization state. In order to compensate the linear birefringence a promising method has been chosen. This method employs orthogonal polarization conjugation in the back propagation direction of the light wave in the fiber. A study and a simulation of an experimental setup are realized with the advantage of a significant sensitivity improvement.

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Existe una creciente necesidad de hacer el mejor uso del agua para regadío. Una alternativa eficiente consiste en la monitorización del contenido volumétrico de agua (θ), utilizando sensores de humedad. A pesar de existir una gran diversidad de sensores y tecnologías disponibles, actualmente ninguna de ellas permite obtener medidas distribuidas en perfiles verticales de un metro y en escalas laterales de 0.1-1,000 m. En este sentido, es necesario buscar tecnologías alternativas que sirvan de puente entre las medidas puntuales y las escalas intermedias. Esta tesis doctoral se basa en el uso de Fibra Óptica (FO) con sistema de medida de temperatura distribuida (DTS), una tecnología alternativa de reciente creación que ha levantado gran expectación en las últimas dos décadas. Específicamente utilizamos el método de fibra calentada, en inglés Actively Heated Fiber Optic (AHFO), en la cual los cables de Fibra Óptica se utilizan como sondas de calor mediante la aplicación de corriente eléctrica a través de la camisa de acero inoxidable, o de un conductor eléctrico simétricamente posicionado, envuelto, alrededor del haz de fibra óptica. El uso de fibra calentada se basa en la utilización de la teoría de los pulsos de calor, en inglés Heated Pulsed Theory (HPP), por la cual el conductor se aproxima a una fuente de calor lineal e infinitesimal que introduce calor en el suelo. Mediante el análisis del tiempo de ocurrencia y magnitud de la respuesta térmica ante un pulso de calor, es posible estimar algunas propiedades específicas del suelo, tales como el contenido de humedad, calor específico (C) y conductividad térmica. Estos parámetros pueden ser estimados utilizando un sensor de temperatura adyacente a la sonda de calor [método simple, en inglés single heated pulsed probes (SHPP)], ó a una distancia radial r [método doble, en inglés dual heated pulsed probes (DHPP)]. Esta tesis doctoral pretende probar la idoneidad de los sistemas de fibra óptica calentada para la aplicación de la teoría clásica de sondas calentadas. Para ello, se desarrollarán dos sistemas FO-DTS. El primero se sitúa en un campo agrícola de La Nava de Arévalo (Ávila, España), en el cual se aplica la teoría SHPP para estimar θ. El segundo sistema se desarrolla en laboratorio y emplea la teoría DHPP para medir tanto θ como C. La teoría SHPP puede ser implementada con fibra óptica calentada para obtener medidas distribuidas de θ, mediante la utilización de sistemas FO-DTS y el uso de curvas de calibración específicas para cada suelo. Sin embargo, la mayoría de aplicaciones AHFO se han desarrollado exclusivamente en laboratorio utilizando medios porosos homogéneos. En esta tesis se utiliza el programa Hydrus 2D/3D para definir tales curvas de calibración. El modelo propuesto es validado en un segmento de cable enterrado en una instalación de fibra óptica y es capaz de predecir la respuesta térmica del suelo en puntos concretos de la instalación una vez que las propiedades físicas y térmicas de éste son definidas. La exactitud de la metodología para predecir θ frente a medidas puntuales tomadas con sensores de humedad comerciales fue de 0.001 a 0.022 m3 m-3 La implementación de la teoría DHPP con AHFO para medir C y θ suponen una oportunidad sin precedentes para aplicaciones medioambientales. En esta tesis se emplean diferentes combinaciones de cables y fuentes emisoras de calor, que se colocan en paralelo y utilizan un rango variado de espaciamientos, todo ello en el laboratorio. La amplitud de la señal y el tiempo de llegada se han observado como funciones del calor específico del suelo. Medidas de C, utilizando esta metodología y ante un rango variado de contenidos de humedad, sugirieron la idoneidad del método, aunque también se observaron importantes errores en contenidos bajos de humedad de hasta un 22%. La mejora del método requerirá otros modelos más precisos que tengan en cuenta el diámetro del cable, así como la posible influencia térmica del mismo. ABSTRACT There is an increasing need to make the most efficient use of water for irrigation. A good approach to make irrigation as efficient as possible is to monitor soil water content (θ) using soil moisture sensors. Although, there is a broad range of different sensors and technologies, currently, none of them can practically and accurately provide vertical and lateral moisture profiles spanning 0-1 m depth and 0.1-1,000 m lateral scales. In this regard, further research to fulfill the intermediate scale and to bridge single-point measurement with the broaden scales is still needed. This dissertation is based on the use of Fiber Optics with Distributed Temperature Sensing (FO-DTS), a novel approach which has been receiving growing interest in the last two decades. Specifically, we employ the so called Actively Heated Fiber Optic (AHFO) method, in which FO cables are employed as heat probe conductors by applying electricity to the stainless steel armoring jacket or an added conductor symmetrically positioned (wrapped) about the FO cable. AHFO is based on the classic Heated Pulsed Theory (HPP) which usually employs a heat probe conductor that approximates to an infinite line heat source which injects heat into the soil. Observation of the timing and magnitude of the thermal response to the energy input provide enough information to derive certain specific soil thermal characteristics such as the soil heat capacity, soil thermal conductivity or soil water content. These parameters can be estimated by capturing the soil thermal response (using a thermal sensor) adjacent to the heat source (the heating and the thermal sources are mounted together in the so called single heated pulsed probe (SHPP)), or separated at a certain distance, r (dual heated pulsed method (DHPP) This dissertation aims to test the feasibility of heated fiber optics to implement the HPP theory. Specifically, we focus on measuring soil water content (θ) and soil heat capacity (C) by employing two types of FO-DTS systems. The first one is located in an agricultural field in La Nava de Arévalo (Ávila, Spain) and employ the SHPP theory to estimate θ. The second one is developed in the laboratory using the procedures described in the DHPP theory, and focuses on estimating both C and θ. The SHPP theory can be implemented with actively heated fiber optics (AHFO) to obtain distributed measurements of soil water content (θ) by using reported soil thermal responses in Distributed Temperature Sensing (DTS) and with a soil-specific calibration relationship. However, most reported AHFO applications have been calibrated under laboratory homogeneous soil conditions, while inexpensive efficient calibration procedures useful in heterogeneous soils are lacking. In this PhD thesis, we employ the Hydrus 2D/3D code to define these soil-specific calibration curves. The model is then validated at a selected FO transect of the DTS installation. The model was able to predict the soil thermal response at specific locations of the fiber optic cable once the surrounding soil hydraulic and thermal properties were known. Results using electromagnetic moisture sensors at the same specific locations demonstrate the feasibility of the model to detect θ within an accuracy of 0.001 to 0.022 m3 m-3. Implementation of the Dual Heated Pulsed Probe (DPHP) theory for measurement of volumetric heat capacity (C) and water content (θ) with Distributed Temperature Sensing (DTS) heated fiber optic (FO) systems presents an unprecedented opportunity for environmental monitoring. We test the method using different combinations of FO cables and heat sources at a range of spacings in a laboratory setting. The amplitude and phase-shift in the heat signal with distance was found to be a function of the soil volumetric heat capacity (referred, here, to as Cs). Estimations of Cs at a range of θ suggest feasibility via responsiveness to the changes in θ (we observed a linear relationship in all FO combinations), though observed bias with decreasing soil water contents (up to 22%) was also reported. Optimization will require further models to account for the finite radius and thermal influence of the FO cables, employed here as “needle probes”. Also, consideration of the range of soil conditions and cable spacing and jacket configurations, suggested here to be valuable subjects of further study and development.

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Although there are numerous accurate measuring methods to determine soil moisture content in a spot, until very recently there were no precise in situ and in real time methods that were able to measure soil moisture content along a line. By means of the Distributed Fiber Optic Temperature Measurement method or DFOT, the temperature in 0.12 m intervals and long distances (up to 10,000 m) with a high time frequency and an accuracy of +0.2º C is determined. The principle of temperature measurement along a fiber optic cable is based on the thermal sensitivity of the relative intensities of backscattered photons that arise from collisions with electrons in the core of the glass fiber. A laser pulse, generated by the DTS unit, traversing a fiber optic cable will result in backscatter at two frequencies. The DTS quantifies the intensity of these backscattered photons and elapsed time between the pulse and the observed returned light. The intensity of one of the frequencies is strongly dependent on the temperature at the point where the scattering process occurred. The computed temperature is attributed to the position along the cable from which the light was reflected, computed from the time of travel for the light.

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Se ha caracterizado la infiltración de un suelo colocado en una columna de suelo de metacrilato, de base hexagonal de diagonal 1 m y 0,6 m de alto, con una densidad aparente de 1,5 g/cm3. El procedimiento utilizado ha sido la fibra óptica y el método denominado “Active Heating pulse method with Fiber Optic temperature sensing” AHFO method, que consiste en emitir un pulso óptico con láser y medir en el tiempo la señal reflejada, de baja intensidad, en diferentes puntos de la fibra óptica. Del espectro de luz reflejada solamente un rango de frecuencias específico, determinado por análisis de frecuencia, se correlaciona con la temperatura. La precisión en la medida es de ± 0,1ºC en una distancia de ± 12,5 cm. En el interior de la columna se colocó el cable de fibra óptica formando tres hélices concéntricas separadas 20 cm , 40 cm y 60 cm del centro. Asimismo, se cubrió la superficie del suelo con una altura media de agua que osciló entre 1,5 a 2,5 cm a lo largo de los 140 min que duró el proceso de calentamiento del cable. El incremento de temperatura antes y después del calentamiento se utilizó para determinar la infiltración instantánea a partir de la expresión de Perzlmaeir et al (2004) y de los números adimensional de Nusselt y Prandtl. Considerando los errores inherentes al procedimiento de cálculo, los resultados muestran que el AHFO method es una herramienta útil en el estudio de la variabilidad espacial de la infiltración en el suelo que permite, además, determinar su valor. Asimismo, muestra su potencial para incluir dichas estimaciones en la calibración de modelos relacionados con la gestión de recursos hídricos.

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Aunque se conocen muchos métodos precisos para medidas de humedad puntuales, hasta hace muy poco, no existían métodos in situ para la medida del contenido de humedad a escala de metros o de kilómetros, importantes cuando pensamos a nivel de cuenca hidrográfica. La fibra óptica ha sido muy utilizada en el área de las comunicaciones. Sin embargo, entre sus aplicaciones más recientes, destaca la de su uso para medir la temperatura incluso en grandes distancias (hasta 10 km) y con una alta frecuencia temporal, lo que ha abierto un amplio abanico de posibilidades muy importantes en el seguimiento medioambiental (Selker et al. 2006a; 2006b, Tyler et al. 2008; Westhoff et al., 2007; Freifeld et al., 2008). La precisión en la medida puede alcanzar ± 0,2ºC en una distancia de ± 25 cm. El método utilizado en los ensayos explicados en esta comunicación es el denominado “Distributed Fiber Optic Temperature Measurement” (medida distribuida de la temperatura con fibra óptica) o DFOT, que consiste en emitir un impulso óptico con láser y medir en el tiempo la señal reflejada en diferentes puntos de la fibra. Este método se ha utilizado en el estudio de filtraciones de minas abandonadas (Selker et al. 2006a) y en proyectos relacionados con el cambio climático, como en el estudio del deshielo en glaciares y balances hídricos en pequeñas cuencas (Selker et al. 2006b). Además, en medios porosos, se ha usado, con buenos resultados para la detección de rotura de diques en presas (Perzlmaier et al. 2004a y 2004b) y para la detección de entrada de agua en vertederos urbanos con cubierta vegetal (Weiss, 2003b). Imhoff et al. (2006) en su revisión de técnicas de medidas de contenido de agua en el suelo destaca el uso del “DFOT heat pulse method” (método DFOT del pulso de calor).

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The objective of this study was to assess the potential of visible and near infrared spectroscopy (VIS+NIRS) combined with multivariate analysis for identifying the geographical origin of cork. The study was carried out on cork planks and natural cork stoppers from the most representative cork-producing areas in the world. Two training sets of international and national cork planks were studied. The first set comprised a total of 479 samples from Morocco, Portugal, and Spain, while the second set comprised a total of 179 samples from the Spanish regions of Andalusia, Catalonia, and Extremadura. A training set of 90 cork stoppers from Andalusia and Catalonia was also studied. Original spectroscopic data were obtained for the transverse sections of the cork planks and for the body and top of the cork stoppers by means of a 6500 Foss-NIRSystems SY II spectrophotometer using a fiber optic probe. Remote reflectance was employed in the wavelength range of 400 to 2500 nm. After analyzing the spectroscopic data, discriminant models were obtained by means of partial least square (PLS) with 70% of the samples. The best models were then validated using 30% of the remaining samples. At least 98% of the international cork plank samples and 95% of the national samples were correctly classified in the calibration and validation stage. The best model for the cork stoppers was obtained for the top of the stoppers, with at least 90% of the samples being correctly classified. The results demonstrate the potential of VIS + NIRS technology as a rapid and accurate method for predicting the geographical origin of cork plank and stoppers

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Fiber optic sensors have some advantages in subjects related with electrical current and magnetic field measurement. In spite of the optical fiber utilization advantages we have to take into account undesirable effects, which are present in real non-ideal optical fibers. In telecommunication and sensor application fields the presence of inherent and induced birefringence is crucial. The presence of birefringence may cause an undesirable change in the polarization state. In order to compensate the linear birefringence a promising method has been chosen. This method employs orthogonal polarization conjugation in the back propagation direction of the light wave in the fiber. A study and a simulation of an experimental setup are realized with the advantage of a significant sensitivity improvement.

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Desde hace ya muchos años, uno de los servicios de telecomunicaciones más demandado por los españoles ha sido la televisión de pago, complementando y ampliando la oferta de contenidos audiovisuales que habitualmente son ofrecidos de manera gratuita por la televisión analógica y recientemente por la televisión digital terrestre o TDT. Estos servicios de video, han sido tradicionalmente ofrecidos por operadores satélites, operadores de cable u otros operadores de telecomunicaciones con los que a través de una conexión de datos (ADSL, VDSL o fibra óptica), ofrecían sus contenidos a través de IP. La propia evolución y mejora de la tecnología utilizada para la emisión de contenidos sobre IP, ha permitido que a día de hoy, la televisión se conciba como un servicio Over The Top (OTT) ajeno al medio de transmisión, permitiendo a cualquier agente, distribuir sus contenidos audiovisuales de manera sencilla y a todos sus clientes en todas las partes del mundo; siendo solamente necesario disponer de una conexión a internet. De esta manera, el proyecto desarrollado va a girar en torno a la herramienta StormTest de la empresa S3Group, comprada por CENTUM Solutions (empresa especializada en ofrecer servicio de ingeniería para sistema de comunicaciones, control e inteligencia de señal) con el objetivo de satisfacer las necesidades de sus clientes y con la que en definitiva se ha contado para la realización de este proyecto. El principal objetivo de este proyecto es la definición e implementación de un banco de pruebas que permita optimizar los procesos de validación técnica, mejorando los tiempos de ejecución y concentrando la actividad de los ingenieros en tareas de mayor valor. Para la realización de este proyecto, se han fijado diversos objetivos necesarios para el desarrollo de este tipo de actividades. Los principales son los siguientes:  Análisis de la problemática actual: donde en los procesos de aceptación técnica se dedica muchas horas de trabajo para la realización de pruebas repetitivas y de poco valor las cuales se pueden automatizar por herramientas existentes en el mercado.  Búsqueda y selección de una herramienta que satisfaga las necesidades de pruebas.  Instalación en los laboratorios.  Configuración y adaptación de la herramienta a las necesidades y proyectos específicos. Con todo ello, este proyecto cubrirá los siguientes logros:  Reducir los tiempos de ejecución de las campañas de pruebas, gracias a la automatización de gran parte ellas.  Realizar medidas de calidad subjetiva y objetiva complejas, imposibles de ejecutar a través de las personas. Mejorar y automatizar los sistemas de reporte de resultados. Abstract: Many years ago, one of the telecommunications services most demanded in Spain has been pay television, complementing and extending the offer of audiovisual content which are usually offered for free by analog tv and recently by digital terrestrial televisión or TDT. These video services, have been traditionally offered by satellite operators, cable operators or other telecommunications operators that through a data connection (ADSL,VDSL or fiber optic), offered its content over IP. The evolution and improvement of the technology used for broadcasting over IP, has allowed that to date, television is conceived as a service Over The Top (OTT), not dependent on the transmission medium, allowing any agent to distribute audiovisual content in a very simple way and to all its customers in all parts of the world; being only necessary to have an decent internet connection. In this way, the project will have relation with S3Group’s StormTest tool, bought by CENTUM Solutions (company specialized in engineering services for communications, control and signal intelligence system) with the aim of satisfying the needs of its customers and which ultimately has counted for the realization of this project. The main objective of this project is the definition and implementation of a test bench that allows to optimize the processes of technical validation, improving execution times and concentrating the activities of engineers on higher value tasks. For the realization of this project, it has been defined several objectives necessary for the development of this type of activity. The most important tones are listed below:  Analysis of the current situation: where in technical acceptance processes it is dedicated many hours of work for the completion of repetitive testing and without value which can be automated by tools available on the market  Search and selection of a tool that meets the needs of testing.  Installation on the laboratories.  Configuration and customization of the tool to specific projects. With all this, this project will cover the following achievements: Reduce the execution time of the testing campaigns, thanks to the automation of many of them.  Measurements of subjective and objective quality tests, impossible to run with engineers (due to subjective perception). Improve and automate reporting of results systems

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This paper reports a new family of multimode fiber-optic switching devices based on nematic liquid crystal devices reported by us previously. These devices have a wedged structure as the main characteristic. Several modes of behavior cart arise depending on the internal configuration of the molecules. As we show, fhey have the possibility of total switching of unpolarized light with a very simple structure, low insertion losses, and very low operating voltages These new devices should find a wide range of applications in fiber-optic communication systems.

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El reflectómetro óptico en el dominio del tiempo, conocido por sus siglas en inglés como OTDR, es un dispositivo muy utilizado en sistemas de comunicaciones por fibra óptica para conocer de una manera rápida y sencilla como varía la potencia óptica a lo largo de la fibra óptica, siendo otro de sus usos frecuentes la localización de fallos y roturas en un enlace. Este proyecto fin de carrera, consiste en la realización mediante Matlab de una interfaz gráfica que permite simular un OTDR para distintos tipos de fibras, conectores y empalmes visualizándose por pantalla la variación de la potencia óptica en función de la distancia, pudiendo ampliar cualquier tramo del enlace que se desee visualizar con mayor detalle. Los objetivos del proyecto podemos establecerlos en dos partes. Primero, realizar una interfaz que nos permita diseñar un enlace de fibra óptica de forma sencilla, permitiendo además medir desde la atenuación de la fibra a la de un empalme. En segundo lugar, emplear la interfaz desarrollada para comprobar conceptos teóricos, haciendo hincapié en los principales errores de un enlace de fibra óptica real. Para una mejor visualización y concepción de lo implementado, es necesario revisar los principios básicos de funcionamiento de la fibra óptica y las principales características de un enlace, así como, los distintos dispositivos que lo componen, para después explicar el funcionamiento del OTDR y sus usos; por ello, en los capítulos segundo y tercero, se explican estas nociones básicas, necesarias para un mejor entendimiento del proyecto. Para poder utilizar la interfaz gráfica de usuario, el capítulo cuarto muestra la descripción de las funciones con parámetros, así como el manual de usuario de la interfaz gráfica. En el capítulo quinto se hace una recopilación y estudios de resultados para distintas simulaciones comprobando desde casos sencillos a casos extremos en los que se debe prestar una especial atención a los elementos que componen el enlace, siendo finalmente, en el sexto capítulo donde se presentan distintas conclusiones así como posibles trabajos futuros, a partir de lo realizado. ABSTRACT. The optical time domain reflectometer, known as OTDR, is a widely used device in systems for fiber optic communications used to know quick and simply how the optical power its varying along the fiber, with particular emphasis to another of its frequent uses in troubleshooting on a link. This final project consists in carrying through a graphical interface in Matlab to simulate an OTDR for different types of fibers, connectors and splices, visualizing the variation of optical power as a function of the distance. It is possible to zoom in specific sections to view them with greater detail. The project objectives can be set in two parts: - Make an interface that allows us to design a fiber optic link easily and measuring from the fiber attenuation to a splice one. - Use the interface developed to test theoretical concepts, emphasizing the most important mistakes of a real optical fiber link. For better visualization and understanding of what it’s been implemented, it is necessary to review the basic operating principles of fiber optics and the main characteristics of a fiber link, and also the different types of devices that comprise it, and then explaining also how the OTDR works and its uses, therefore, in second and third chapters, explains these basics needed for a better understanding of the project. To use the GUI, the fourth chapter shows the description of the functions with parameters and the user manual of the GUI. The fifth chapter is a compilation and study of some simulation results for simple cases to check from simply to extreme cases putting special attention to the elements that make up the link. To sum up, in the sixth chapter will appear different conclusions and possible future works for improving the graphical interface or making a new one.

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Nowadays, in order to take advantage of fiber optic bandwidth, any optical communications system tends to be WDM. The way to extract a channel, characterized by a wavelength, from the optical fiber is to filter the specific wavelength. This gives the systems a low degree of freedom due to the fact of the static character of most of the employed devices. In this paper we will present a different way to extract channels from an optical fiber with WDM transmission. The employed method is based on an Optically Programmable Logic Cells (OPLC) previously published by us, for other applications as a chaotic generator or as basic element for optical computing. In this paper we will describe the configuration of the OPLC to be employed as a dropping device. It acts as a filter because it will extract the data carried by a concrete wavelength. It does depend, internally, on the wavelength. We will show how the intensity of the signal is able to select the chosen information from the line. It will be also demonstrated that a new idea of redundant information it is the way of selecting the concrete wavelength. As a matter of fact this idea is apparently the only way to use the OPLC as a dropping device. Moreover, based on these concepts, a similar way to route signals to different routes is reported. The basis is the use of photonic switching configurations, namely Batcher or Bayan structures, where the unit switching cells are the above indicated OPLCs.

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Con el objetivo de consolidar los conocimientos en Sistemas de Telecomunicación, se pretende diseñar una red para la distribución de servicios avanzados, como televisión, internet de banda ancha y telefonía, mediante el uso de la tecnología FTTH. La red será totalmente pasiva, óptica, y de gran ancho de banda, Tipo PON (Passive Optical Network), de manera que el haz de luz del emisor se distribuye hacia múltiples fibras siguiendo diferentes direcciones, o las confina en el sentido opuesto usando técnicas WDM y TDMA. En primer lugar, es preciso realizar un estudio teórico sobre las características de la fibra óptica, junto con las propiedades de los elementos activos y pasivos que interactúan con ella, para poder comprender la tecnología en la que se basa y así ofrecer una solución final acorde a las necesidades que se presenten. Tras un vistazo general a la tecnología de fibra óptica, se procede a estudiar las características y topologías de las redes de acceso basadas en la misma, junto con los requisitos de cara al diseño de la redes y a la gestión de proyectos. Se definirán los objetivos de la red, ya que la complejidad de la red depende de factores como la extensión y cobertura de la misma, o el ancho de banda. Posteriormente se irá diseñando la red en una arquitectura descendente hasta destinar una única fibra óptica para cada hogar dentro de la cobertura de la red. Se detallarán todas las especificaciones necesarias para definir la red, (potencias, modulaciones y tipos de fibra) así como el instrumental y demás medios necesarios para operar con la misma. Aunque el diseño de una red FTTH contempla muchos más aspectos de los estudiados en el presente proyecto, se tomó como objetivo el diseño y planificación correspondientes a una sección de un área de escasa población donde la instalación se tomó como viable, obviando así pequeños detalles y centrándose en el despliegue de fibra óptica. Se pretende así ofrecer una solución de infraestructura doméstica de telecomunicaciones, apta para las futuras necesidades que implican la creciente demanda de servicios como internet de banda ancha o almacenamiento y procesado de aplicaciones en nube. La fibra óptica tiene mucho que ofrecer a las telecomunicaciones, y cada vez es más frecuente encontrar redes de fibra óptica como parte de un servicio de telecomunicaciones, tanto como para particulares como empresas. ABSTRACT. Aiming to strengthen knowledge in Telecommunications Systems, is intended to design a network for advanced services broadcasting, including digital TV, broadband internet and telephony, by using FTTH technology. This network will be entirely passive optic, and high bandwidth, PON type (Passive Optical Network) so that the transmitter beam is broadcasting to multiple optical fibers, branching out in different ways or joining them in the opposite. First, it is necessary to perform a theoretical study on the characteristics of the optical fiber, along with the properties of the active and passive elements that interact with it, to understand the technology that is based and offer a final solution according needs that arise. After an overview of the optical fiber technology, we proceed to study the characteristics and topologies access networks based on that, together with the requirements to face the network design and project management. System objectives will be determined, since the complexity of the network depends on factors such as the size and scope of it, or bandwidth. Later, the network will be designing in downstream architecture to deliver a single optical fiber to each household within the network area. All necessary specifications to define the network (power, modulation and fiber types) will be determined, as instruments and other means to operate it. Although FTTH network design includes many more aspects of those studied in this project, it was taken as objective the network design and planning corresponding to a section of a sparsely populated area where the facility was taken as feasible thus obviating small details and focus on the deployment of optical fiber. This is intended to provide a solution of household telecommunications infrastructure suitable for future needs involving the growing demand for services such as broadband internet or processing storage and cloud applications. The optical fiber has much to offer to telecommunications, and it is increasingly common to find fiber optic networks as part of a telecommunications service, both to individuals and businesses.